# 剑指 Offer 51. 数组中的逆序对
# 在数组中的两个数字，如果前面一个数字大于后面的数字，则这两个数字组成一个逆序对。输入一个数组，求出这个数组中的逆序对的总数。

 

# 示例 1:

# 输入: [7,5,6,4]
# 输出: 5
 

# 限制：

# 0 <= 数组长度 <= 50000



class Solution:
    def mergeSort(self, nums, tmp, l, r):
        if l >= r:
            return 0

        mid = (l + r) // 2
        inv_count = self.mergeSort(nums, tmp, l, mid) + self.mergeSort(nums, tmp, mid + 1, r)
        i, j, pos = l, mid + 1, l
        while i <= mid and j <= r:
            if nums[i] <= nums[j]:
                tmp[pos] = nums[i]
                i += 1
                inv_count += (j - (mid + 1))
            else:
                tmp[pos] = nums[j]
                j += 1
            pos += 1
        for k in range(i, mid + 1):
            tmp[pos] = nums[k]
            inv_count += (j - (mid + 1))
            pos += 1
        for k in range(j, r + 1):
            tmp[pos] = nums[k]
            pos += 1
        nums[l:r+1] = tmp[l:r+1]
        return inv_count

    def reversePairs(self, nums: List[int]) -> int:
        n = len(nums)
        tmp = [0] * n
        return self.mergeSort(nums, tmp, 0, n - 1)